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Robotic On-Site Adaptive Thin-Layer Printing (2022-09)

Challenges and Workflow for Design and Fabrication of Bespoke Cementitious Plasterwork at Full-Architectural-Scale

10.1007/s44150-022-00062-9

 Jenny Ercan, Mitterberger Daniela,  Lloret-Fritschi Ena,  Vasey Lauren, Sounigo Eliott, Tsai Ping-Hsun,  Aejmelaeus-Lindström Johan,  Jenny David,  Gramazio Fabio,  Kohler Matthias
Journal Article - Architecture, Structures and Construction

Abstract

This paper describes the 1:1 scale application of Robotic Plaster Spraying (RPS), a novel, adaptive thin-layer printing technique, using cementitious base coat plaster, realized in a construction setting. In this technique, the print layers are vertical unlike most 3DCP processes. The goal is to explore the applicability and scalability of this spray-based printing technique. In this study, RPS is combined with an augmented interactive design setup, the Interactive Robotic Plastering (IRoP), which allows users to design directly on the construction site, taking the building structure, as-built state of the on-going fabrication and the material behavior into consideration. The experimental setup is an on-site robotic system that consists of a robotic arm mounted on a semi-mobile vertical axis with an integrated, automated pumping and adaptive spraying setup that is equipped with a depth camera. The user interaction is enabled by a controller-based interaction system, interactive design tools, and an augmented reality interface. The paper presents the challenges and the workflow that is needed to work with a complex material system on-site to produce bespoke plasterwork. The workflow includes an interactive design procedure, localization on-site, process control and a data collection method that enables predicting the behavior of complex-to-simulate cementitious material. The results demonstrate the applicability and scalability of the adaptive thin-layer printing technique and address the challenges, such as maintaining material continuity and working with unpredictable material behavior during the fabrication process.

8 References

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  5. Jenny Ercan, Lloret-Fritschi Ena, Jenny David, Sounigo Eliott et al. (2022-06)
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5 Citations

  1. Çapunaman Özgüç, Farrokhsiar Paniz, Bilén Sven, Duarte José et al. (2025-01)
    Vision-Based Sensing and Digital Twin-Technologies in Conformal 3D Concrete Printing:
    Exploring Operational Accuracy, Adaptability, and Scalability, and Investigating Monitoring-Capabilities in Large-Scale Applications
  2. Dielemans Gido, Lachmayer Lukas, Khader Noor, Hack Norman et al. (2024-07)
    Robotic Repair:
    In-Place 3D Printing for Repair of Building Components Using a Mobile Robot
  3. Lu Bing, Wang Lining, Wang Xiangyu, Tan Ming et al. (2024-04)
    Development of Robotic Sprayable Self-Sensing Cementitious Material for Smart Structural Health Monitoring
  4. Lu Bing, Li Ziyang, Li Mingyang, Feng Jianhang et al. (2023-11)
    Substitution of Cement by Marine-Clay in Spray-Based 3D Concrete Printing
  5. Jenny Ercan, Pietrasik Lukasz, Sounigo Eliott, Tsai Ping-Hsun et al. (2022-11)
    Continuous Mobile Thin-Layer On-Site Printing

BibTeX
@article{jenn_mitt_llor_vase.2022.ROSATLP,
  author            = "Ercan Selen Jenny and Daniela Mitterberger and Ena Lloret-Fritschi and Lauren Vasey and Eliott Sounigo and Ping-Hsun Tsai and Johan Julius Petrus Aejmelaeus-Lindström and David Jenny and Fabio Gramazio and Matthias Daniel Kohler",
  title             = "Robotic On-Site Adaptive Thin-Layer Printing: Challenges and Workflow for Design and Fabrication of Bespoke Cementitious Plasterwork at Full-Architectural-Scale",
  doi               = "10.1007/s44150-022-00062-9",
  year              = "2022",
  journal           = "Architecture, Structures and Construction",
}
Formatted Citation

E. S. Jenny, “Robotic On-Site Adaptive Thin-Layer Printing: Challenges and Workflow for Design and Fabrication of Bespoke Cementitious Plasterwork at Full-Architectural-Scale”, Architecture, Structures and Construction, 2022, doi: 10.1007/s44150-022-00062-9.

Jenny, Ercan Selen, Daniela Mitterberger, Ena Lloret-Fritschi, Lauren Vasey, Eliott Sounigo, Ping-Hsun Tsai, Johan Julius Petrus Aejmelaeus-Lindström, David Jenny, Fabio Gramazio, and Matthias Daniel Kohler. “Robotic On-Site Adaptive Thin-Layer Printing: Challenges and Workflow for Design and Fabrication of Bespoke Cementitious Plasterwork at Full-Architectural-Scale”. Architecture, Structures and Construction, 2022. https://doi.org/10.1007/s44150-022-00062-9.